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N Fausto

Publications and source records attributed to N Fausto.

At least 91 records · Page 5Linked to original sources

Transforming growth factor alpha may be a physiological regulator of liver regeneration by means of an autocrine mechanism.

We investigated whether transforming growth factor alpha (TGF-alpha) is involved in hepatocyte growth responses both in vivo and in culture. During liver regeneration after partial hepatectomy in rats, TGF-alpha mRNA increased; it reached a maximum (approximately 9-fold higher than normal) at the peak of DNA synthesis. The message and the peptide were localized in hepatocytes and found in higher amounts in hepatocytes obtained from regenerating liver. TGF-alpha caused a 13-fold elevation of DNA synthesis in hepatocytes in primary culture and was slightly more effective than epidermal growth factor. TGF-beta blocked TGF-alpha stimulation when added either simultaneously with TGF-alpha or a day later. TGF-alpha message increased in hepatocytes stimulated to undergo DNA synthesis by TGF-alpha or epidermal growth factor, and the peptide was detected in the culture medium by RIA. In the regenerating liver, the increase in TGF-alpha mRNA during the first day after partial hepatectomy coincided with an increase in epidermal growth factor/TGF-alpha receptor mRNA and a decrease (already reported) in the number of these receptors. We conclude that TGF-alpha may function as a physiological inducer of hepatocyte DNA synthesis during liver regeneration by means of an autocrine mechanism and that its stimulatory effects in this growth process are balanced by the inhibitory action of TGF-beta 1.

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Transforming activity of DNA from rat liver tumors induced by the carcinogen methyl(acetoxymethyl)nitrosamine.

Altered c-Ha-ras genes have been frequently detected in the DNA of spontaneous or chemically induced mouse liver tumors. To determine if ras gene mutation is a frequent event during liver carcinogenesis in rats, we examined the transforming activity of DNA from liver tumors that developed in rats injected with methyl(acetoxymethyl)nitrosamine (DMN-OAc) after a partial hepatectomy. Three weeks after the injection of DMN-OAc, rats were fed a diet containing phenobarbital. This carcinogen acts only on replicating liver cells. Six of eight tumor DNAs induced the transformation of NIH 3T3 cells. The transforming activity was stable upon a second round of transfection, and the transformants were tumorigenic in nude mice. Southern blot analysis of transformant DNAs showed that the transforming activity was not due to the acquisition of a ras (Ha, Ki, or N), neu, myc, A-raf, v-raf, erbA, or erbB gene of rat origin. Several transformants' restriction enzyme sensitivity was analyzed, and their activity indicated that similar transforming sequences were present in at least two tumors and that one tumor contained two different transforming sequences. These results suggest that during hepatocarcinogenesis induced in rats by DMN-OAc, alterations in the ras gene family occur infrequently or not at all and that several different genes (which are not homologous to common oncogenes) become activated and are capable of transforming NIH 3T3 cells.

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Transforming growth factor beta mRNA increases during liver regeneration: a possible paracrine mechanism of growth regulation.

Transforming growth factor beta (TGF-beta) is a growth factor with multiple biological properties including stimulation and inhibition of cell proliferation. To determine whether TGF-beta is involved in hepatocyte growth responses in vivo, we measured the levels of TGF-beta mRNA in normal liver and during liver regeneration after partial hepatectomy in rats. TGF-beta mRNA increases in the regenerating liver and reaches a peak (about 8 times higher than basal levels) after the major wave of hepatocyte cell division and mitosis have taken place and after the peak expression of the ras protooncogenes. Although hepatocytes from normal and regenerating liver respond to TGF-beta, they do not synthesize TGF-beta mRNA. Instead, the message is present in liver nonparenchymal cells and is particularly abundant in cell fractions enriched for endothelial cells. TGF-beta inhibits epidermal growth factor-induced DNA synthesis in vitro in hepatocytes from normal or regenerating liver, although the dose-response curves vary according to the culture medium used. We conclude that TGF-beta may function as the effector of an inhibitory paracrine loop that is activated during liver regeneration, perhaps to prevent uncontrolled hepatocyte proliferation.

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Demonstration of glucose-6-phosphatase and peroxisomal catalase activity by ultrastructural cytochemistry in oval cells from livers of carcinogen-treated rats.

Oval cells isolated from livers of carcinogen-treated rats have morphologic and biochemical features of immature hepatocytes but seem to lack glucose-6-phosphatase (G6Pase) activity. The authors reinvestigated this question using histochemical methods for visualization of G6Pase activity by light and electron microscopy and the polyene antibiotic filipin to facilitate the penetration of the substrate. Oval cells that proliferate in the liver of animals receiving a carcinogenic diet (choline-deficient, containing 0.05% ethionine) contained G6Pase activity; 50-60% of nonparenchymal epithelial cells isolated from these livers by centrifugal elutriation contained G6Pase activity; and oval cell cultures displayed intense G6Pase activity at confluence but did not have detectable enzyme activity during exponential growth. These results and the demonstration that clofibrate induces peroxisomal proliferation in cultured oval cells strengthen the view that oval cells (or some subpopulation of cells in this compartment) are part of the hepatocyte lineage.

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Growth in culture and tumorigenicity after transfection with the ras oncogene of liver epithelial cells from carcinogen-treated rats.

Two epithelial cell lines designated LE/2 and LE/6 were established from cells isolated by centrifugal elutriation from the livers of carcinogen-treated rats. Both cell lines exhibit some characteristics of fetal liver cells, such as the expression of the 2.3-kilobase alpha-fetoprotein mRNA, aldolase A, and lactate dehydrogenases 4 and 5. Primary cultures contain gamma-glutamyl transferase-positive cells which do not proliferate in vitro. After the first passage, the LE/2 and LE/6 cell lines are uniformly gamma-glutamyl transferase negative. Neither cell line is transformed as assayed by morphology, anchorage-independent growth, or tumor formation in nude mice. By the 50th passage, LE/6 cells form numerous colonies in soft agar in the presence of epidermal growth factor, while no colonies grow in medium lacking this growth factor. Clonal cell populations derived from five epidermal growth factor-induced soft agar colonies were not tumorigenic in nude mice. This indicates that, although epidermal growth factor-responsive late passage cells had acquired some of the phenotypic properties commonly associated with tumor cells, these cells were not fully transformed. Transformation of LE/6 cells was accomplished by transfection of the rasH oncogene (EJ). Subcutaneous inoculation of rasH (EJ)-transfected LE/6 cells produced tumors at the site of injection with histological features of moderate to well-differentiated trabecular hepatocellular carcinomas. Tumor cell lines derived from the nude mouse tumors are gamma-glutamyl transferase positive and express alpha-fetoprotein mRNA. One clonal cell line expresses both alpha-fetoprotein and albumin mRNA. These results show that nonparenchymal liver epithelial cells transfected with an activated oncogene can give rise to differentiated hepatocellular tumors similar to those induced in livers of rats fed a carcinogenic diet.

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Proto-oncogene expression and growth factors during liver regeneration.

When growth is stimulated in normally quiescent hepatocytes, steady-state levels of c-fos, c-myc, and p53 mRNAs increase sequentially and transiently before DNA replication. C-fos mRNA increases almost immediately after partial hepatectomy and decreases by 2 hr; c-myc mRNA reaches maximal levels between 30 min and 2 hr. In contrast, the p53 mRNA increase corresponds to the G1/S transition, and mRNAs from c-ras genes are elevated later, coinciding with DNA replication and mitosis. p53 and p21 proteins are elevated when their mRNAs are more abundant. This regulated response suggests that these genes either control key steps in the cell cycle or are responding to humoral or internal growth factors acting at specified growth stages. We propose that hepatocytes go through a "priming" stage during the first four hours after partial hepatectomy and that their progression through late G1, is likely to be controlled by autocrine or paracrine mechanisms, which may account for the precisely regulated growth of the liver after partial hepatectomy. Transforming growth factor beta (TGF beta) is a potent inhibitor of DNA synthesis in normal hepatocytes in vitro. We show that TGF beta mRNA increases in the regenerating liver at the time of hepatocyte DNA synthesis and mitosis. In normal or regenerating liver, the mRNA for this growth factor is contained in nonparenchymal cells but not in hepatocytes. We suggest that TGF beta may be a component of a paracrine regulatory loop that controls hepatocyte replication.

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Sequential protooncogene expression during rat liver regeneration.

When growth is stimulated in the normally quiescent adult rat liver by partial hepatectomy, steady state levels of messenger RNAs (mRNAs) for c-fos, c-myc, and p53 increase sequentially during the prereplicative phase which precedes DNA synthesis. Levels of c-fos mRNA are elevated at least 4-fold within 15 min after partial hepatectomy and decrease rapidly by 2 h; c-myc mRNA reaches maximal levels (5-fold over normal) between 30 min and 2 h after the operation. A second, transient phase of expression for both c-fos and c-myc occurs around 8 h after partial hepatectomy. p53 mRNA levels increase between 8 and 12 h after the operation (5-fold over normal) and are reflected in an elevation of steady state levels of p53 protein between 12 and 15 h after partial hepatectomy. The levels of ras p21 protein increase much later at a time of active DNA replication and cell division. Actinomycin D injected at the time of partial hepatectomy blocks the increase in c-myc at 2 h but has no effect on c-fos mRNA levels. Actinomycin D injected at 6 h only partially blocks the increase in c-myc and p53 mRNA at 8 h but does not affect c-fos mRNA. Our results suggest that the transient and sequential expression of protooncogenes during the prereplicative stage of liver regeneration is likely to reflect events associated with entry and progression of hepatocytes into the cell cycle and can serve as markers for identifying specific humoral factors involved in liver regeneration.

Albumins↗

A structural analysis of gap and tight junctions in the rat liver during a dietary treatment that induces oval cell proliferation.

The authors have investigated early changes in liver cell gap and tight junctions that occur when rats are fed a carcinogenic diet. Animals were fed a choline-deficient diet that contained 0.1% ethionine (CDE) for periods up to 6 weeks. Short-term feeding of this diet results in the rapid proliferation of so-called "oval cells" within the liver, which is reversible upon returning the rats to a normal diet. Livers from animals fed the diet were removed at various times during feeding and during recovery from the diet and were analyzed by light and electron microscopy. The freeze-fracture technique was used to produce extended views of the internal structure of liver cell membranes at each stage under study. The characteristic junctional complex surrounding canalicular regions in normal liver disappears after only 2 weeks of the CDE regimen. Gap junctions were not found after 4 weeks of the diet, and tight junctions became increasingly disorganized. Tight junction elements were observed, however, between hepatocytes and oval cells, which indicated that these two cell types do interact directly. Changes occur in the structural complexity of tight junction elements between hepatocytes and between hepatocytes and oval cells. Recovery from the CDE diet results in a rapid increase in junctional complexity, and the large gap junction plaques characteristic of normal liver are visible within 2 weeks after cessation of the CDE regimen. These and other observations demonstrate that reversible alterations in hepatocyte gap and tight junctions occur as a result of administration of a diet that induces oval cell proliferation. The relationship of these changes to those that have been reported during other processes of cell proliferation are discussed.

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Methylation of the alphafetoprotein gene in cell populations isolated from rat livers during carcinogenesis.

We examined the methylation pattern and organization of the AFP gene in whole livers and in isolated cell populations purified from livers of rats fed a carcinogenic diet which interferes with DNA methylation. Using restriction endonuclease digestion, we find no differences in methylation pattern and overall organization of the AFP gene in oval cells (AFP-producers) and hepatocytes (non-producers) isolated at the early stages of carcinogenesis. Our studies indicate that in cell populations which produce AFP as well as in cells which are not active in AFP synthesis, the majority of the CCGG sites of the AFP gene are extensively methylated. In addition, we describe the existence of polymorphism in the AFP and albumin genes of Sprague-Dawley rats.

Albumins↗

Expression of c-Ki-ras, c-Ha-ras, and c-myc in specific cell types during hepatocarcinogenesis.

We examined the expression of six proto-oncogenes in (i) whole rat liver and isolated liver cell populations during the course of hepatocarcinogenesis induced by a choline-deficient diet containing 0.1% ethionine and (ii) fetal rat liver at different stages of development. The abundance of c-Ki-ras, c-Ha-ras, and c-myc transcripts in polysomal polyadenylated RNA from liver cells increased by 2 weeks after the start of the carcinogenic diet. c-Ki-ras and c-myc expression remained elevated during the 35 weeks of the diet, whereas c-Ha-ras transcripts increased transiently. A primary tumor sampled at 35 weeks after the carcinogenic diet was started contained high levels of both c-Ki-ras and c-myc RNA. The abundance of c-src transcripts was unchanged throughout carcinogenesis; c-abl and c-mos transcripts were not detected in either preneoplastic or neoplastic livers. To determine which cell types within the liver contained proto-oncogene transcripts, we isolated hepatocytes, oval cells, and bile duct cells from normal and preneoplastic livers. The results indicate that proto-oncogenes are expressed differentially in these cell types during hepatocarcinogenesis and that the expression of c-Ki-ras and c-myc is high in oval cells throughout carcinogenesis. In developing livers, c-Ki-ras, c-Ha-ras, and c-myc transcript levels were high at 17 days of gestation but reached the low values characteristic of adult rat livers between 20 days of gestation and 3 days after birth.

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Homology between rat liver RNA populations during development, regeneration, and neoplasia.

To investigate the degree of homology which may exist between rat liver RNA populations during development, regeneration, and neoplasia, we hybridized polyadenylated RNAs from (a) normal adult, (b) 24-h regenerating, (c) 20-day fetal livers, and (d) the transplantable Morris hepatoma 5123tc to homologous and heterologous complementary DNAs and to cDNAs enriched for sequences preferentially transcribed in either adult or fetal liver. We also compared the in vitro translation products of these RNAs. Analyses of normal adult, regenerating, and fetal liver RNA populations and their translation products show that the overall pattern of gene expression during liver regeneration differs little from that of normal adult rat liver and that mature hepatocytes do not appear to revert to an "immature" state upon reentering the cell cycle. Comparisons between fetal, normal adult, and tumor RNA populations revealed that RNA populations from fetal liver and the 5123tc tumor lack sequences normally expressed in the mature adult liver. However, the tumor does not "reexpress" sequences which are preferentially expressed in fetal livers.

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Cell lineages in liver carcinogenesis: possible clues from studies of the distribution of alpha-fetoprotein RNA sequences in cell populations isolated from normal, regenerating, and preneoplastic rat livers.

We analyzed in isolated rat liver cell populations and in fetal and neoplastic livers the distribution of RNA sequences which hybridize with alpha-fetoprotein (AFP) complementary DNA clones. Parenchymal and nonparenchymal cell populations were isolated from normal, regenerating, preneoplastic, and bile duct-ligated rat livers. We found that oval cells, fetal liver, and a primary hepatocellular carcinoma contain the full length 2.3-kilobase AFP messenger RNA (mRNA); in normal adult rat liver, 2.3-kilobase AFP mRNA is found at low levels in an unidentified subpopulation of nonparenchymal cells but is not detected in hepatocytes; both parenchymal and nonparenchymal cells from normal or preneoplastic livers contain in variable proportion a smaller AFP RNA which hybridizes only with complementary DNA clones containing sequences located near the 5' end of the rat AFP gene; during liver regeneration induced by CCl4, elevation of the full length AFP mRNA occurs in nonparenchymal cells but seemingly not in hepatocytes. The results suggest that some cells in the nonparenchymal cell fraction of normal adult rat liver might retain the capacity to produce the 2.3-kilobase AFP mRNA found in large amounts in fetal livers, oval cells, and hepatic tumors. Although the nature of these cells remains to be determined, we suggest that such cells might be the source of the small amounts of AFP synthesized in normal rat liver and may constitute the proposed but as yet uncharacterized "facultative stem cell" compartment in rat liver.

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Oncodevelopmental expression of rat placental alkaline phosphatase. Detection in oval cells during liver carcinogenesis.

Oval cells isolated from livers of rats fed a choline-deficient diet containing 0.1% DL-ethionine (CDE) have an alkaline phosphatase (ALKP) isozyme which can be distinguished by its electrophoretic mobility from the enzyme present in parenchymal cells isolated from normal liver or livers of rats fed the CDE diet for 4 weeks. The oval cell ALKP has the same electrophoretic mobility as the enzyme from fetal rat liver and placenta. ALKPs from oval cells, parenchymal cells, and placenta all differ from the intestinal enzyme by their electrophoretic mobility, isoelectric focusing, and the patterns of amino acid inhibition of enzyme activity. Oval cells in preneoplastic livers, fetal hepatocytes, and tumor cells of a primary hepatocellular carcinoma induced by CDE feeding stained with a monoclonal antibody directed against rat placental ALKP. Hepatocytes (in normal or preneoplastic livers) and bile duct cells in normal liver did not stain with the same antibody. Placental ALKP may thus be a useful marker in tracing the origin and fate of oval cells during hepatocarcinogenesis.

Alkaline Phosphatase↗

Messenger RNA in regenerating liver: implications for the understanding of regulated growth.

The application of nucleic acid hybridization techniques to the study of liver regeneration has led to a revision of some well-established ideas about the patterns of gene expression during regenerative growth. This paper focuses on two broad problems: a) the extent to which mRNA populations in regenerating liver differ qualitatively or quantitatively from those of normal liver, and b) the similarities and differences between the pattern of gene expression during liver regeneration and liver development. Answers to these questions have come from studies in normal and regenerating liver of, a) the proportion of non-repetitive and repetitive DNA transcribed, b) the complexity of mRNA populations and the abundance of sequences in these populations, c) the extent of homology between mRNA populations, d) the amounts of specific mRNAs for albumin, alphafetoprotein, and fibrinogen, and e) the transcription of some cellular oncogenes. Changes in the abundance of liver mRNA transcripts, without major qualitative alterations in the spectrum of sequences contained in the RNA populations, are sufficient to permit the transition of hepatocytes from a resting into a dividing state. Transcripts from at least two cellular oncogenes are included among the mRNA sequences which become more abundant during liver regeneration. Analysis of the expression of some specific genes (albumin, alphafetoprotein and fibrinogen) during liver regeneration suggests that there is little similarity between the patterns of gene expression in regenerating and developing liver.

Albumins↗

Regulated transcription of c-Ki-ras and c-myc during compensatory growth of rat liver.

We examined the transcription of six cellular oncogenes during the process of compensatory growth in rat liver after partial hepatectomy. We have previously reported that transcripts of c-rasH are elevated during regenerative growth of the liver. We now report that transcripts of c-rasK and c-myc genes are significantly elevated after partial hepatectomy, whereas transcripts of c-abl and c-src are essentially unchanged and transcripts of c-mos are undetectable in either normal or regenerating rat liver. In liver regeneration after partial hepatectomy or chemical injury, changes in c-myc transcripts occur before DNA synthesis. The elevation of c-myc and c-ras transcripts is sequential in that highest levels of c-myc transcripts were detected 12 to 18 h after partial hepatectomy, whereas the levels of c-rasH and c-rasK were maximal by 36 to 48 h. Transcripts of all three activated oncogenes returned to their basal levels by 96 h.

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Isolation of oval cells by centrifugal elutriation and comparison with other cell types purified from normal and preneoplastic livers.

Oval cells and biliary epithelial cells were isolated from livers of rats fed a choline-deficient diet containing 0.1% ethionine and from normal rat livers, respectively. Nonparenchymal cell suspensions prepared from these livers by collagenase perfusion followed by digestion of undissociated tissue with 0.1% collagenase, 0.1% Pronase, and 0.004% DNase I were separated into six fractions by centrifugal elutriation. Cells in each fraction were characterized histochemically for gamma-glutamyl transpeptidase, peroxidase, alkaline phosphatase, and glucose-6-phosphatase activities, and for albumin and alpha-fetoprotein by immunocytochemical methods. Cells from Fraction 5 of the elutriation procedure had various features predicted for oval cells and were selected for further studies. The cell yield in this fraction, from each preneoplastic liver, was 5.7 X 10(7) cells, 93 +/- 2% of which were gamma-glutamyl transpeptidase positive, 6 +/- 1% peroxidase positive, 61% albumin positive, and 29% alpha-fetoprotein positive. Cells in this fraction have a median diameter of 13.1 micron and are diploid and cycling. The majority of these cells has morphological features characteristic of biliary epithelial cells, although some cells display features intermediate between duct cells and hepatocytes. Nucleic acid hybridization using specific probes revealed that these cells contain albumin and alpha-fetoprotein messenger RNAs, while hepatocytes from normal and preneoplastic liver contain only albumin messenger RNA. Biliary cells obtained from normal livers do not contain albumin messenger RNA. The large-scale purification and characterization of cell populations from preneoplastic livers is an important step in elucidating the cellular derivation of liver tumors.

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Isozyme profiles of oval cells, parenchymal cells, and biliary cells isolated by centrifugal elutriation from normal and preneoplastic livers.

The fetal liver isozymes aldolase A and pyruvate kinase K increase in livers of adult rats fed a choline deficient-diet containing 0.1% ethionine. Oval cells isolated by centrifugal elutriation from preneoplastic livers of animals receiving the carcinogenic diet contained these fetal forms as well as fetal-adult isozyme hybrids. In contrast, parenchymal cells isolated from the livers of these animals had only aldolase B and pyruvate kinase L, the same isozymes present in parenchymal cells of normal adult rats. Liver homogenates from rats receiving the carcinogenic diet contain lactate dehydrogenase (LDH) 1, LDH 2, and LDH 3 in addition to LDH 4 and LDH 5, which are the forms detected in normal liver homogenates. LDH 1, LDH 2, and LDH 3 are present in oval cells of preneoplastic livers and in biliary epithelial cells of normal livers, but not in parenchymal cells isolated from normal and preneoplastic livers. Cells of biliary epithelium from normal livers also contain aldolase A and pyruvate kinase K, but not the fetal-adult isozymes present in oval cell populations. The results indicate that, in animals receiving this carcinogenic diet, isozyme alterations associated with neoplasia result from the proliferation of a new cell population which contains these enzymes and not from "dedifferentiation" of mature hepatocytes. Furthermore, the data suggest that this new cell population may include a liver stem cell compartment containing cells in transitional states of differentiation.

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